量子计算能改善大配置空间的均匀随机抽样吗?

Joshua Ammermann, Tim Bittner, Domenik Eichhorn, Ina Schaefer, C. Seidl
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引用次数: 2

摘要

软件产品线对高度可配置系统的可变性进行建模。对所有有效配置(配置空间)的完全探索是不可实现的,因为在最坏的情况下,它会随着特征数量呈指数增长。在实践中,很少有代表性的配置被抽样,这可能用于软件测试或硬件验证。现代计算机的伪随机性给这些样本带来了统计偏差。量子计算使基于固有随机量子物理效应的真正随机、均匀的配置采样成为可能。我们提出了一种方法,将整个位形空间编码在一个叠加中,然后测量一个随机样本。我们展示了该方法在多个样本上的均匀性,并研究了不同特征模型的尺度。针对当前和未来的量子硬件,我们讨论了均匀随机抽样量子计算的可能性和局限性。
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Can Quantum Computing Improve Uniform Random Sampling of Large Configuration Spaces?
A software product line models the variability of highly configurable systems. Complete exploration of all valid configurations (the configuration space) is infeasible as it grows exponentially with the number of features in the worst case. In practice, few representative configurations are sampled instead, which may be used for software testing or hardware verification. Pseudo-randomness of modern computers introduces statistical bias into these samples. Quantum computing enables truly random, uniform configuration sampling based on inherently random quantum physical effects. We propose a method to encode the entire configuration space in a superposition and then measure one random sample. We show the method's uniformity over multiple samples and investigate its scale for different feature models. We discuss the possibilities and limitations of quantum computing for uniform random sampling regarding current and future quantum hardware.
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